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  • Homogeneously dispersed multimetal oxygen-evolving catalysts

    Author(s)
    Zhang, Bo
    Zheng, Xueli
    Voznyy, Oleksandr
    Comin, Riccardo
    Bajdich, Michal
    Garcia-Melchor, Max
    Han, Lili
    Xu, Jixian
    Liu, Min
    Zheng, Lirong
    de Arquer, F Pelayo Garcia
    Dinh, Cao Thang
    Fan, Fengjia
    Yuan, Mingjian
    Yang, Huagui
    et al.
    Griffith University Author(s)
    Yang, Huagui
    Year published
    2016
    Metadata
    Show full item record
    Abstract
    Earth-abundant first-row (3d) transition metal-based catalysts have been developed for the oxygen-evolution reaction (OER); however, they operate at overpotentials substantially above thermodynamic requirements. Density functional theory suggested that non-3d high-valency metals such as tungsten can modulate 3d metal oxides, providing nearoptimal adsorption energies for OER intermediates. We developed a room-temperature synthesis to produce gelled oxyhydroxides materials with an atomically homogeneous metal distribution. These gelled FeCoW oxyhydroxides exhibit the lowest overpotential (191 millivolts) reported at 10 ...
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    Earth-abundant first-row (3d) transition metal-based catalysts have been developed for the oxygen-evolution reaction (OER); however, they operate at overpotentials substantially above thermodynamic requirements. Density functional theory suggested that non-3d high-valency metals such as tungsten can modulate 3d metal oxides, providing nearoptimal adsorption energies for OER intermediates. We developed a room-temperature synthesis to produce gelled oxyhydroxides materials with an atomically homogeneous metal distribution. These gelled FeCoW oxyhydroxides exhibit the lowest overpotential (191 millivolts) reported at 10 milliamperes per square centimeter in alkaline electrolyte. The catalyst shows no evidence of degradation after more than 500 hours of operation. X-ray absorption and computational studies reveal a synergistic interplay between tungsten, iron, and cobalt in producing a favorable local coordination environment and electronic structure that enhance the energetics for OER.
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    Journal Title
    Science
    Volume
    352
    Issue
    6283
    DOI
    https://doi.org/10.1126/science.aaf1525
    Subject
    Nanomaterials
    Science & Technology
    Multidisciplinary Sciences
    Science & Technology - Other Topics
    WATER OXIDATION
    EVOLUTION REACTION
    Publication URI
    http://hdl.handle.net/10072/413601
    Collection
    • Journal articles

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